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Use of sol-gel hybrids for laser optical thin films

Published online by Cambridge University Press:  01 February 2011

Philippe Belleville
Affiliation:
CEA / Le Ripault - BP16 - 37260 Monts - France
Philippe Prené
Affiliation:
CEA / Le Ripault - BP16 - 37260 Monts - France
Claude Bonnin
Affiliation:
CEA / Le Ripault - BP16 - 37260 Monts - France
Yves Montouillout
Affiliation:
CEA / Le Ripault - BP16 - 37260 Monts - France
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Abstract

The CEA/DAM megajoule-class pulsed Nd:glass laser devoted to Inertial Confinement Fusion (ICF) research is requiring 7,000-m2 of coated area onto 10,000 optical components. Among these different optics, two specific examples of applied sol-gel chemistry will be described. First one is dealing with the 240 44-cm square cavity-end mirrors needing to be highly-reflective (HR)-coated onto deformable substrates. Such large dielectric mirrors are using interference quaterwave stacks of SiO2 and ZrO2-PVP (PolyVinylPyrrolidone) thin films, both starting from sol-gel colloidal suspensions (sols). The ZrO2-PVP high index layer is a nanohybrid material prepared from mixing nanosized-zirconia suspension with a transparent polymer solution (PVP). The oxide/polymer ratio of the hybrid system has been optimized regarding refractive index value and laser damage threshold. UV-curing of the nanohybrid has enabled optical coating stacking up to 20 layers, achieving 99% minimum reflection over the whole coated surface. FT-IR spectroscopy has been used to highlight particles/polymer chemical interactions and also polymer modifications under UV-irradiation.

Second example is concerning development of a silica-based hybrid material to protect silvercoated light reflector used in laser pumping cavity. These metallic reflectors require a protective overlayer in order to preserve high-reflectivity front surfaces for long periods of operation under intense broadband flashlamp light and typical airborne contaminants. The so-called ormosil coating has been optimized in term of thickness and composition to enhance silver resistance to oxidation and tarnishing under UV-irradiation, to protect silver layer from clean-room cleaning procedure, to withstand 10,000 flashlamp glow-discharges exposure with the lowest possible change in the reflection value. To fulfil these requirements, the developed hybrid sol-gel material acts as an oxidation dense barrier, is chemical-resistant, is durable and remain transparent in the 400-1000nm wavelength range. Moreover, the sol-gel process allows industrial protective coating deposition onto large-sized and multi-shaped reflectors. These new protected reflectors will need to be replaced much less often than reflectors employed in current solid-state lasers, ensuring both higher performance and lower operating costs.

Type
Research Article
Copyright
Copyright © Materials Research Society 2002

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References

1. Floch, H.G. Belleville, P.F. Priotton, J.J. et al, Am. Ceram. Soc. Bull. 74, No. 10, 11 and 12, 1995.Google Scholar
2. Floch, H.G. and Belleville, P.F. French Patent 92 08524, 1992, assigned to CEA.Google Scholar
3. Belleville, P.F. and Floch, H. G. 24th Boulder Damage Symposium Proceedings, 1992, SPIE 1848, 290.Google Scholar
4. Stöber, W. et al., J.Colloid Interface Sci., 26, 62, 1968.Google Scholar
5. Somiya, S. Yoshimura, M. et al., Ceramic Powder Science, Advances in Ceramics, 21, 43, edited by Messing, G. L. et al; Am. Ceram. Soc. 1987.Google Scholar
6. Fowkes, F. M. Ceramic Powder Science, Advances in Ceramics, 21, 411, edited by Messing, G.L. et al., American Ceramic Society Proc. 1989.Google Scholar
7. Toki, M. et al, Polymer Bulletin, 29, 653, 1992.Google Scholar
8. Bassner, S. L. and Klingenberg, E. H. The American Ceramic Society Bulletin, June 1998.Google Scholar
9. Floch, H.G. and Belleville, P.F. French Patent 93 08762, 1993, assigned to CEA.Google Scholar
10. Thomas, I.M. Laser-Induced Damage in Optical Materials: 1992, SPIE's Proc. 1848, 281, 1993.Google Scholar
11. Guglielmi, M. Journal of Sol-Gel Science and Technology, 8, 443, 1997.Google Scholar
12. Morales, A. and Duran, A. Journal of Sol-Gel Science and Technology, 8, 451, 1997.Google Scholar